Department of Orthopedics, The People's Hospital of Xinjiang Uygur Autonomous Region, Urumqi 830001, China.
ACS Appl Mater Interfaces. 2022 Feb 23;14(7):8804-8815. doi: 10.1021/acsami.1c22868. Epub 2022 Feb 14.
Three-dimensional printing technologies have opened up new possibilities for manufacturing bioceramics with complex shapes in a completely digital fabrication process. Some bioceramics have demonstrated elaborate design and high resolution in their small parts through digital light projection (DLP) printing. However, it is still a challenge to prepare large-scale, high-precision ceramics that can effectively regulate the bioactivity of materials. In this study, we fabricated a large-scale hydroxyapatite porous bioceramic (length >150 mm) using DLP. This bioceramic had highly micronanoporous surface structures (printing resolution <65 μm), which could be controlled by adjusting the solid content and sintering process. Both in vitro and in vivo results indicated that the designed bioceramic had promising bone regeneration ability. This study provides significant evidence for exploring the effects of microenvironments on bone tissue regeneration. These results indicated that DLP technology has the potential to produce large-scale bone tissue engineering scaffolds with accurate porosity.
三维打印技术为采用完全数字化制造工艺用复杂形状生物陶瓷开辟了新的可能性。一些生物陶瓷通过数字光投影(DLP)打印已经展示了在其小零件方面的精细设计和高分辨率。然而,制备能够有效调控材料生物活性的大规模、高精度陶瓷仍然是一个挑战。在这项研究中,我们使用 DLP 制造了一种大规模的羟基磷灰石多孔生物陶瓷(长度>150mm)。这种生物陶瓷具有高度微纳多孔表面结构(打印分辨率<65μm),可通过调整固含量和烧结工艺来控制。体外和体内结果均表明,所设计的生物陶瓷具有有前途的骨再生能力。这项研究为探索微环境对骨组织再生的影响提供了重要证据。这些结果表明,DLP 技术有潜力生产具有精确孔隙率的大规模骨组织工程支架。